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Biomedical subjects

J E Goodrich

Publications and source records attributed to J E Goodrich.

At least 19 recordsLinked to original sources

Ketamine prevents ischemic neuronal injury.

The dissociative anesthetic ketamine hydrochloride antagonizes the excitotoxic action of excitatory amino acids in the central nervous system. Proposals that the excitatory amino acid neurotransmitters may become excitotoxic and contribute to the pathophysiology of ischemic brain injury prompted us to examine ketamine in a model of global cerebral ischemia in gerbils. Pretreatment with anesthetic doses of ketamine ameliorated in a dose-dependent manner both behavioral and histopathological assessments of ischemic neuronal injury. These neuroprotective effects are proposed to result from a specific antiexcitotoxic rather than general anticonvulsant drug action. There may be clinical situations in which the neuroprotective actions of ketamine would be of therapeutic importance.

Anesthetics↗

Opioid receptor subtype-specific cross-tolerance to the effects of morphine on schedule-controlled behavior in mice.

Key-press responding of mice was maintained under a fixed-ratio (FR) 30-response schedule of food presentation. Successive 3-min periods during which the experimental chamber was illuminated and the schedule was in effect were preceded by 10-min time-out (TO) periods during which all lights were out and responses had no scheduled consequences. Intraperitoneal (IP) injections of saline or of cumulative doses of drugs were given at the start of each TO period. Successive saline injections had little or no effect on response rates, whereas the mu-opioid agonists morphine (0.1-10.0 mg/kg) and levorphanol (0.1-3.0 mg/kg), the kappa-opioid agonist ethylketazocine (0.03-3.0 mg/kg), the mixed mu-/delta-opioid agonist metkephamid (0.1-10.0 mg/kg), and the nonopioid dissociative anesthetic ketamine (1.0-100.0 mg/kg) generally produced dose-related decreases in response rates. Following chronic administration of morphine (100.0 mg/kg/6 h), tolerance developed to the effects of morphine on rates of responding. In addition, a comparable degree of cross-tolerance developed to the effects of levorphanol and metkephamid. On the other hand, there was no evidence of cross-tolerance to the effects of ethylketazocine or ketamine. These results are consistent with the evidence suggesting that different opioid agonists exert their behavioral effects through distinct classes of opioid receptors.

Animals↗

Chemical synthesis of glucuronidated metabolites of cortisol.

During in vivo metabolism the addition of six atoms of hydrogen to cortisone at the appropriate location and configuration can lead to formation of either 3 alpha,17,20 alpha,21-tetrahydroxy 5 beta-pregnan-11-one (cortolone) or 3 alpha,17,20 beta,21-tetrahydroxy-5 beta-pregnan-11-one (beta-cortolone). Likewise, metabolic reduction of cortisol can lead to formation of either 5 alpha-pregnane-3 alpha,11 beta,17,20 alpha,21-pentol (cortol) or the 20 beta isomer (beta-cortol). This paper describes the chemical syntheses of the C-3 beta-D-glucosiduronates of cortolone, beta-cortolone, cortol and beta-cortol-conjugates which are normal excretory products of man. The foregoing conjugates are characterized as free acids (or salts), as methyl esters and as polyacetate methyl esters.

Glucuronates↗

C-3 glucosiduronates of metabolites of adrenal steroids.

On treatment with methyl 2,3,4-tri-O-acetyl-1-bromo-1-deoxy-alpha-D-glucuronate and silver carbonate, tetrahydrocortisone 21-acetate gave the corresponding 3-glucosiduronate triacetyl methyl ester. This product was converted into the 20-semicarbazone which, by treatment with alkali to hydrolyze the ester functions and acid to hydrolyze the semicarbazone moiety, gave tetrahydrocortisone 3-glucosiduronic acid. The acid was converted into the crystalline barium salt and into the methyl ester. An analogous series of reactions was carried out on tetrahydrocortexolone 21-acetate. Treatment of the 20-semicarbazone of tetrahydrocortisone 3-glucosiduronic acid with potassium borohydride reduced the 11-oxo function to an 11 beta hydroxyl group; acid-catalyzed removal of the semicarbazone group produced tetrahydrocortisol 3-glucosiduronic acid which also was obtained as the barium salt and the methyl ester.

Adrenal Cortex Hormones↗

Liquid ion exchangers in reversed-phase systems for chromatography of steroidal glucosiduronic acids.

Steroidal glucosiduronic acids were chromatographed on paper by the reversed-phase technique using five different liquid ion exchangers as stationary phase and aqueous KCl as mobile phase. The relationship of mobility of the acids (Rm) to both the amount of exchanger on the paper and the concentration of KCl in the mobile phase is discussed: the relationships may be expressed as Rm=n.log [exchanger] + const. and RM=-N.LOG [KCl] + const., respectively. Migration of the acids in the presence of different exchangers is correlated by use of the equation Rm (exchanger Y)=a.Rm (exchanger X) + b. The lack of appreciable correlation between migration of the acids in a reversed-phase system and a corresponding straight-phase system is discussed and expressed by means of regression equations. The correlation coefficients and standard errors of estimate from these equations provide useful indices for selecting two solvent systems that are to be used sequentially to obtain maximal resolution of a group of compounds. deltaRm values obtained for various functional groups with reversed-phase and straight-phase techniques are compared.

Chromatography, Ion Exchange↗

Liquid ion exchangers in paper chromatography of steoidal glucosiduronic acids. Influence of different exchangers on the mobility in chloroform-formamide and correlation of chromatographic data.

A group of 25 steroidal glucosiduronic acids was chromatographed on paper chloroform-formamide in the presence of several different liquid ion exchangers. Chromatograms were run also in three Bush-type systems. RF values were converted into RM values and the data were correlated by use of a series of regression equations of the type RM(Y) = a-RM(X) + b, in which X designates a standard system to which each other system (Y) is compared. The ratio of the slope a to the correlation coefficient r (i.e., a/r) is a measure of the resolving power of system Y relative to the standard system; intercept b, in association with slope a, is an indication of the polarity of system Y relative to X. The correlation coefficient r and the standard error of estimate sy-x are indications of whether solvent systems Y and X have very similar or relatively different resolving properties for a group of solutes. The regression equations are useful for correlating chromatographic data obtained from a group of compounds in several solvent systems. Properties of the chromatography systems are discussed and the relative importance of ion exchange and hydrogen bonding with the various solvent systems is pointed out. Delta RMg and delta RMr values are given for functional groups at several locations in the conjugates for ten of the chromatography systems.

Chloroform↗

Liquid ion exchangers in paper chromatography of steroidal glucosiduronic acids, glucosiduronic esters and free steroids. Influence of concentration of exchanger and counterion.

The chromatographic mobility of steroidal glucosiduronic acids on paper in chloroform-formamide increases as the concentration of ion exchanger in the chloroform phase increases; mobility decreases as the concentration of counterion in formamide increases. Mobility of glucosiduronic esters and of hydroxylated free steroids increases with an increase in concentration of exchanger; small changes in concentration of counterion in the stationary phase do not alter the migration of these nonionizable compounds. Data are presented which suggest that partition of the glucosiduronic acids between the two phases occurs predominantly by an ion-exchange process and that hydrogen bonding plays a secondary role. Partition of the glucosiduronic esters and hydroxylated free steroids appears to occur primarily by a hydrogen-bonding process.

Cholesterol↗

Extraction of steroidal glucosideronic acids from aqueous solutions by anionic liquid ion-exchangers.

A pilot study on the extraction of three steroidal glucosiduronic acids from water into organic solutions of liquid ion-exchangers is reported. A single extraction of a 0.5mm aqueous solution of either 11-deoxycorticosterone 21-glucosiduronic acid or cortisone 21-glucosiduronic acid with 0.1m-tetraheptylammonium chloride in chloroform took more than 99% of the conjugate into the organic phase; under the same conditions, the very polar conjugate, beta-cortol 3-glucosiduronic acid, was extracted to the extent of 43%. The presence of a small amount of chloride, acetate, or sulphate ion in the aqueous phase inhibited extraction, but making the aqueous phase 4.0m with ammonium sulphate promoted extraction strongly. An increase in the concentration of ion-exchanger in the organic phase also promoted extraction. The amount of cortisone 21-glucosiduronic acid extracted by tetraheptylammonium chloride over the pH range of 3.9 to 10.7 was essentially constant. Chloroform solutions of a tertiary, a secondary, or a primary amine hydrochloride also will extract cortisone 21-glucosiduronic acid from water. The various liquid ion exchangers will extract steroidal glucosiduronic acid methyl esters from water into chloroform, although less completely than the corresponding free acids. The extraction of the glucosiduronic acids from water by tetraheptylammonium chloride occurs by an ion-exchange process; extraction of the esters does not involve ion exchange.

Acetates↗

Recovery of steroidal glucosiduronic acids from organic solvents containing anionic liquid ion-exchangers.

Solutions of anionic liquid ion-exchangers in organic solvents are potentially useful for extracting steroidal glucosiduronic acids from biological fluids and for purifying mixtures of these acids by chromatography. If a glucosiduronic acid is to be isolated in pure form after either of these procedures, it is necessary to separate it from the ion-exchanger. Separation from an organic solution of tetraheptylammonium chloride may be accomplished by extraction with water under the following conditions, which promote transfer of a glucosiduronate to the aqueous phase: (1) an appropriate solvent (diluent) as the organic phase, (2) the presence in the two-phase mixture of an anion such as myristate or dodecyl sulphate to combine with the tetraheptylammonium ion, and (3) an increase of the pH of the aqueous phase in association with the presence of myristate or dodecyl sulphate. The foregoing factors apply also to removal of glucosiduronates from organic solutions of ion exchangers that are hydrochlorides of tertiary, secondary, or primary amines. Since these amines exert progressively less solubilizing effect for glucosiduronates as the pH of the aqueous phase is increased, the conjugates can be released from the organic phase by adjusting the pH to 10 and omitting the myristate or dodecyl sulphate.

Amines↗